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Freeway Traffic Speed Estimation by Regression Machine-Learning Techniques Using Probe Vehicle and Sensor Detector Data

机译:使用探头车辆和传感器检测器数据回归机器学习技术的高速公路交通速度估算

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摘要

In the literature, machine-learning techniques have been extensively implemented to capture the stochastic characteristics of freeway traffic speed. The deployment of intelligent transportation systems (ITSs) in recent decades offers much enriched and a wider range of traffic data, which makes it possible to adopt a variety of machine-learning methods to estimate traffic speed. However, an understanding of what type of machine-learning models to select for such applications and how to use probe vehicle data to estimate traffic conditions are still lacking. To fill this research gap, this study aims to utilize regression machine-learning algorithms to estimate traffic speed using probe vehicle and sensor detector data; also, the performance of the utilized machine-learning algorithms is compared using a novel traffic speed estimation framework. The results show that the proposed framework can effectively capture time-varying traffic patterns and has a superior ability to accurately estimate traffic speed in a timely manner. Using sensor detector data as the benchmark, the comparison results show that a random forest achieves the best performance in terms of traffic speed estimation. (c) 2020 American Society of Civil Engineers.
机译:在文献中,已经广泛地实施了机器学习技术以捕获高速公路交通速度的随机特征。近几十年来智能交通系统(ITS)的部署提供了大量丰富和更广泛的交通数据,这使得可以采用各种机器学习方法来估算流量速度。然而,了解为这些应用选择的机器学习模型以及如何使用探针车辆数据来估计交通条件的机器学习模型。为了填补这项研究缺口,本研究旨在利用回归机器学习算法使用探头车辆和传感器检测器数据来估计流量速度;此外,使用新颖的业务速度估计框架进行比较利用的机器学习算法的性能。结果表明,所提出的框架可以有效地捕获时变的交通模式,并且具有优越的能力,可以及时准确地估计流量。使用传感器检测器数据作为基准,比较结果表明,随机森林在交通速度估计方面实现了最佳性能。 (c)2020年美国土木工程师协会。

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